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Privacy, Power, and Invisible Labor on Amazon Mechanical Turk

机译:亚马逊机械土耳其人的隐私,权力和无形劳动力

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Tasks on crowdsourcing platforms such as Amazon Mechanical Turk often request workers' personal information, raising privacy risks that may be exacerbated by requester-worker power dynamics. We interviewed 14 workers to understand how they navigate these risks. We found that Turkers' decisions to provide personal information during tasks were based on evaluations of the pay rate, the requester, the purpose, and the perceived sensitivity of the request. Participants also engaged in multiple privacy-protective behaviors, such as abandoning tasks or providing inaccurate data, though there were costs associated with these behaviors, such as wasted time and risk of rejection. Finally, their privacy concerns and practices evolved as they learned about both the platform and worker-designed tools and forums. These findings deepen our understanding of both privacy decision-making and invisible labor in paid crowdsourcing, and emphasize a general need to understand how privacy stances change over time.
机译:亚马逊机械土耳其众群体平台上的任务经常要求工人的个人信息,提高了要求的隐私风险,要求员工动力动力学可能加剧。我们采访了14名工人,了解他们如何导航这些风险。我们发现土耳其人在任务期间提供个人信息的决定是基于薪酬率,请求者,目的和请求的感知敏感性的评估。参与者还从事多种隐私保护行为,例如放弃任务或提供不准确的数据,但与这些行为有关,例如浪费时间和拒绝风险。最后,他们的隐私问题和做法在于他们了解到平台和工人设计的工具和论坛。这些调查结果深化了我们对众所周境的隐私决策和隐形劳动力的理解,并强调普遍需要了解隐私阶段随着时间的推移如何变化。

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